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Subdividing triangular and quadrilateral meshes in parallel to approximate curved geometries

机译:细分三角形和四边形网格平行于近似弯曲几何形状

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A parallel distributed approach to refine a mesh while preserving the curvature of a target geometry is presented. Our approach starts by generating a coarse linear mesh of the computational domain. Second, the former coarse mesh is curved to match the curvature of the target geometry. Then, the curved mesh is partitioned and the subdomain meshes are sent to the slaves. Finally, the curved elements are uniformly subdivided in parallel targeting the geometry approximated by the curved mesh. The result is a distributed finer linear mesh featuring improved geometric accuracy. The key ingredient of our implementation is to approximate the target geometry as a linear mesh equipped with an elemental field corresponding to an element-wise polynomial geometry representation. Thus, the distribution of the curved geometry is equivalent to partitioning the linear mesh and sending the subdomain meshes and the elemental fields to the slaves. The main application of the obtained finer linear mesh is to compute in parallel steady state flow solutions on real topographies. The qualitative results show that for 2D and 3D steady state flow solutions, on real and synthetic topographies, our parallel subdivision approach mitigates the artificial artifacts that might appear with standard straight-sided subdivision methods. We also check the parallel performance of the implementation by performing a weak scalability test in 2D.
机译:提出了一种并行分布式方法,以便在保持目标几何形状的曲率的同时进行细化网状物。我们的方法通过生成计算域的粗略线性网来开始。其次,前者粗网格弯曲以匹配目标几何形状的曲率。然后,弯曲网格被分区,并且将子域网格发送到从站。最后,弯曲元件均匀地细分,并行地瞄准弧形网格近似的几何形状。结果是分布式更精细的线性网格,具有改进的几何精度。我们实现的关键成分是将目标几何形状近似为配备有与元素 - 方面多项式几何表示对应的元素字段的线性网格。因此,曲线几何的分布等同于将线性网格分区并将子域网格和元素字段发送到从站。所获得的Finer线性网格的主要应用是在实际拓扑上以并行稳态流量解决方案计算。定性结果表明,对于2D和3D稳态流量解决方案,在实际和合成的地形上,我们的并行细分方法会降低标准直接细分方法可能出现的人工伪像。我们还通过在2D中执行弱可伸缩性测试来检查实现的并行性能。

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